【题解】【区间】【二分查找】【Leetcode】Insert Interval & Merge Intervals

Given a set of non-overlapping intervals, insert a new interval into the intervals (merge if necessary).

You may assume that the intervals were initially sorted according to their start times.

Example 1:
Given intervals [1,3],[6,9], insert and merge [2,5] in as [1,5],[6,9].

Example 2:
Given [1,2],[3,5],[6,7],[8,10],[12,16], insert and merge [4,9] in as [1,2],[3,10],[12,16].

This is because the new interval [4,9] overlaps with [3,5],[6,7],[8,10].

思路:

Insert IntervalMerge Intervals的一个延伸问题,先看看怎么Merge

Given a collection of intervals, merge all overlapping intervals.

For example,
Given [1,3],[2,6],[8,10],[15,18],
return [1,6],[8,10],[15,18].

 1 vector<Interval> merge(vector<Interval> &intervals) {
 2     if(intervals.size() <= 1)
 3         return intervals;
 4         
 5     vector<Interval> vres;
 6     sort(intervals.begin(), intervals.end(), intvalcomp);//先对interval排序
 7     Interval tmp(intervals[0]);
 8     for(Interval it:intervals){
 9         if(tmp.start == it.start){
10             tmp.end = it.end;
11         }else if(tmp.end >= it.start){//intervals有序,必然有tmp.start < it->start
12             if(tmp.end < it.end)//直接无视后者{[1,4],[2,3]}
13                 tmp.end = it.end;//直接吞并后者{[1,3],[2,4]}
14         }else{
15             vres.push_back(tmp);//不相交
16             tmp = it;
17         }
18     }
19     vres.push_back(tmp);//漏掉这句会fail{[1,4],[1,4]}
20     return vres;
21 }
22 
23 bool intvalcomp(Interval a, Interval b){
24     if(a.start == b.start)
25         return a.end < b.end;
26     else
27         return a.start < b.start;
28 }

现在有了这个Merge好了的不相交区间序列,怎么进行插入呢?Insert Interval条件太多,每一个大小等号比较,每一个小下标就能让人栽跟斗,因此它也是我目前最讨厌的题目,没有之一。

一开始尝试这种思路:

“新序列按照start排好序(start肯定是各不相同的),第一步我们先用二分找出有交集的序列片段的开始,这一点很像Search Insert Position,然后再往后处理。”

脑子不清楚憋了一下午,恶心的我两天不能刷Leetcode,如果真要写出来的话,就老老实实下面这样,效率不一定差,因为看题目反正是不想要你改变输入参数,横竖都得遍历一遍来拷贝。挺有意思的是,晚上我看到了Google Campus的youku视频,讲述的就是一个倒霉孩子花了30min写二分Insert Interval的反例。。。

 1 vector<Interval> insert(vector<Interval> &intervals, Interval newInterval) {
 2     vector<Interval> rs;
 3     int i = 0;
 4     while(i < intervals.size() && intervals[i].end < newInterval.start){//找到第一个起点
 5         rs.push_back(intervals[i++]);
 6     }
 7     if(i == intervals.size()){//为空或过了结尾点  
 8         rs.push_back(newInterval);
 9         return rs;
10     }
11     
12     newInterval.start = min(newInterval.start, intervals[i].start);
13     while(i < intervals.size() && intervals[i].start <= newInterval.end){//找到结束点 
14         newInterval.end = max(newInterval.end, intervals[i++].end);
15     }
16     rs.push_back(newInterval);
17 
18     while(i < intervals.size()){
19         rs.push_back(intervals[i++]);
20     }
21     return rs;
22 }

 

posted on 2014-02-19 17:50  小唯THU  阅读(404)  评论(0编辑  收藏  举报

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